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Pedican
Pediatric cancer database
General information | Literature | Expression | Regulation | Mutation | Interaction

Basic Information

Gene ID

2952

Name

GSTT1

Synonymous

-;glutathione S-transferase theta 1;GSTT1;glutathione S-transferase theta 1

Definition

GST class-theta-1|glutathione S-transferase theta-1|glutathione transferase T1-1

Position

22q11.23

Gene type

protein-coding

Cancer type

Abstract

Hodgkin's disease;Immunological

BACKGROUND: One of the most serious late effects of treatment for childhood cancer is the occurrence of subsequent malignancy. Survivors of Hodgkin disease (HD), in particular, have been shown to be at high risk of subsequent malignancy, the occurrence of which has been associated strongly with exposure to radiotherapy. METHODS: In the current study, the authors investigated the association between polymorphisms in 3 genes--glutathione-S-transferase M1 (GSTM1), glutathione-S-transferase T1 (GSTT1), and XRCC1, with roles in protection from a variety of DNA-damaging agents-and the risk of subsequent malignancy in 650 survivors of HD enrolled in the childhood cancer Survivor Study who had received radiotherapy. RESULTS: Individuals lacking GSTM1 but not GSTT1 were at increased risk of any subsequent malignancy (odds ratio [OR], 1.5; 95% confidence interval [CI], 1.0-2.3), and for subsequent cancer within the radiation field (OR, 1.4; 95% CI, 0.9-2.1). A nonsignificant increased risk of thyroid carcinoma was observed in individuals lacking either GSTM1 (OR, 2.9; 95%CI, 0.8-10.9) or GSTT1 (OR, 3.7; 95% CI, 0.6-23.5). Individuals having the genotype of the arginine/glutamine polymorphism at codon 399 in the XRCC1 gene (R399) showed a nonsignificant increased risk of breast carcinoma compared with those without (OR, 1.4; 95% CI, 0.7-2.7), and a nonsignificant decreased risk against a subsequent thyroid carcinoma (OR, 0.6; 95% CI, 0.2-1.6). No differences in genotype frequencies were observed between survivors with basal cell carcinoma when compared with survivors without a subsequent cancer. CONCLUSIONS: These data illustrated the potential value of incorporating the collection of genomic DNA in longitudinal cohort studies of populations with well defined, potentially carcinogenic exposures. Evaluation of additional genetic polymorphisms in this cohort may help define genes that influence individual sensitivity to radiotherapy.#CI- Copyright 2004 American cancer Society.

acute lymphoblastic leukemia;Hematological

BACKGROUND: Biotransformation plays a crucial role in carcinogen activity and many genetic polymorphisms in xenobiotic metabolising enzymes have been associated with an increased risk of cancer. Such polymorphisms can lead to considerable variation in the activities of these enzymes, which are crucial in carcinogen and drug metabolism. These variations could play a role in the risk of developing paediatric acute lymphoblastic leukaemia (ALL) by their varying action on environmental carcinogens. PROCEDURE: The present study looked for two polymorphisms (m1 and m2) in the CYP1A1, CYP2D6*4 genes and deletions of the glutathione S-transferases (GSTM1 and GSTT1) in 118 paediatric ALL patients and 118 age matched control children. The polymerase chain reaction (PCR) and restriction fragment length polymorphism (RFLP) were used to study gene polymorphisms. RESULTS: In children with ALL, CYP1A1 m1 polymorphism was evidentin 42.4% of subjects and CYP1A1 m2 in 37.3%. These were significantly different from the results obtained for control children (20.3% for CYP1A1 m1 and 19.5% for m2). Subjects with CYP1A1 m1 homozygous variant had a sixfold risk and CYP1A1 m2a fourfold risk. In contrast, CYP2D6*4 was more prevalent in the controls than in the cases. Subjects with GSTM1 deletions had increased risk of ALL (OR = 2.1, P = 0.009). The odds ratios for both CYP1A1 m1 and m2 homozygous polymorphisms beingassociated with childhood ALL was 5.67 (95% CI = 2.11-15.27). The odds ratios for both GSTM1 and GSTT1 deletions being associated with ALL was 2.78 (95% CI = 0.67-11.56). CONCLUSIONS: These results suggest that genetic polymorphisms of xenobiotic metabolising enzymes appear to influence susceptibility to childhood ALL.#CI- Copyright 2004 Wiley-Liss, Inc.

acute lymphoblastic leukemia;Hematological

The objective of this study was to identify novel pharmacogenetic determinants of treatment-related hepatotoxicity during the maintenance phase in children with acute lymphoblastic leukemia (ALL) or lymphoblastic lymphoma (LBL). Although theauthors first determined whether genotypes of drug-metabolizing enzymes and transporters--glutathione S-transferase (GST) genes, GSTM1 positive/null, GSTT1 positive/null and GSTP1 A313G, methylenetetrahydrofolate reductase (MTHFR) C677T, reduced folate carrier 1 (RFC1) G80A, and breast cancer resistant protein (BCRP)C421A--were associated with hepatotoxicity for 24 patients, no significant difference was detected for genotype and allelic frequencies between the patients with and those without severe treatment-related hepatotoxicity. Therefore, the authors explored potential candidate polymorphisms associated with hepatotoxicity using the Illumina Infinium HumanHap300, encompassing more than 318,000 tag single-nucleotide polymorphisms (SNPs), for 8 of 24 patients with or without severe hepatotoxicity. Genome-wide genotyping uncovered a total of 28 candidate SNPs. rs1966862, in Rho GTPase-activating protein 24 (ARHGAP24), was the most significant of the candidates, and the genotypes of rs13424027 (PARD3B), rs1156304 (KCNIP4), rs10255262 (SLC13A1), rs7403531 (RASGRP1), and rs381423 (unidentified gene) were also significantly associated with severe hepatotoxicity. This study suggested rs1966862 (ARHGAP24) and the other SNPs to be predictive factors for drug-induced hepatotoxicity during the maintenance phase in pediatric patients with ALL or LBL.

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